Touch control driving unit, driving method thereof and touch control driving circuit

ABSTRACT

A touch control driving unit includes a shift register circuit, a strobe circuit and an output circuit, wherein the shift register circuit includes a first control port, an input port and a triggering signal output port, is connected to the strobe circuit, and is configured to generate a triggering signal; the strobe circuit includes a second control port and a strobe signal port, is connected to the shift register circuit, and is configured to control the output circuit; and the output circuit includes an output port, a stable level port and a touch control signal port, and is configured to output a stable level or a touch control signal under control of the strobe circuit.

CROSS-REFERENCE TO RELATED APPLICATIONS

This is a Continuation-In-Part of U.S. patent application Ser. No. 15/122,328, filed Aug. 29, 2016, a National Phase Application filed under 35 U.S.C. 371 as a national stage of PCT/CN2015/079166 filed on May 18, 2015, an application claiming the benefit of Chinese application No. 201510038756.X filed on Jan. 26, 2015, the content of each of which is hereby incorporated by reference in its entirety.

TECHNICAL FIELD

The present disclosure relates to the field of touch control driving technology, and in particular to a touch control driving unit, a driving method thereof and a touch control driving circuit.

BACKGROUND

A mutual capacitance touch control structure mainly includes a plurality of scanning electrodes (Txs) and a plurality of sensing electrodes (Rxs) crossing the plurality of scanning electrodes. A touch control signal (e.g., a high frequency alternating signal) is inputted to the scanning electrodes alternately to cause the corresponding sensing electrode to generate an induced signal. When a touch occurs, a capacitance between the scanning electrode and the sensing electrode at the touch point changes, the induced signal in the sensing electrode also changes, and the touch position can be obtained by analyzing the induced signal.

SUMMARY

Embodiments of the present disclosure provide a touch control driving unit, a driving method thereof and a touch control driving circuit.

A first aspect of the present disclosure provides a touch control driving unit, including a shift register circuit, a strobe circuit and an output circuit, wherein

the shift register circuit includes a first control port, an input port and a triggering signal output port, the shift register circuit is connected to the strobe circuit and is configured to generate a triggering signal;

the strobe circuit includes a second control port and a strobe signal port, the strobe circuit is connected to the shift register circuit and is configured to control the output circuit;

the output circuit includes an output port, a stable level port and a touch control signal port, the output circuit is configured to output a stable level or a touch control signal under control of the strobe circuit;

the shift register circuit further includes a first NOT gate, a second NOT gate, a first tri-state NOT gate and a second tri-state NOT gate;

an input terminal of the first NOT gate is connected to the first control port;

an input terminal of the first tri-state NOT gate is connected to the input port, a low level turn-on terminal of the first tri-state NOT gate is connected to an output terminal of the first NOT gate, a high level turn-on terminal of the first tri-state NOT gate is connected to the first control port; and an output terminal of the first tri-state NOT gate is connected to an input terminal of the second NOT gate and an output terminal of the second tri-state NOT gate; and

an input terminal of the second tri-state NOT gate is connected to the triggering signal output port, an output terminal of the second NOT gate and the strobe circuit, a low level turn-on terminal of the second tri-state NOT gate is connected to the first control port, and a high level turn-on terminal of the second tri-state NOT gate is connected to the output terminal of the first NOT gate.

In an embodiment, the touch control driving unit further includes:

an amplifying circuit provided between the strobe circuit and the output circuit, and configured to amplify a signal which is generated by the strobe circuit and is used for controlling the output circuit.

In an embodiment, the strobe circuit further comprises a first subcircuit and a second subcircuit connected to each other, and the second subcircuit comprises a second transistor, a third NOT gate and a first transmission gate, wherein

an input terminal of the third NOT gate is connected to the first subcircuit, an output terminal of the third NOT gate is connected to a gate electrode of the second transistor;

a first electrode of the second transistor is connected to the amplifying circuit and an output terminal of the first transmission gate, and a second electrode of the second transistor is connected to a low level signal; and

an input terminal of the first transmission gate is connected to the strobe signal port, and the first transmission gate includes two gate control voltage terminals connected to the input terminal and the output terminal of the third NOT gate, respectively.

In an embodiment, the two gate control voltage terminals of the first transmission gate include a high level turn-on terminal and a low level turn-on terminal;

the output terminal of the third NOT gate is further connected to the high level turn-on terminal of the first transmission gate, and the second transistor is a P-type transistor;

the first subcircuit comprises a NAND gate and a firsttransistor;

the first transistor is an N-type transistor, a first electrode of the first transistor is connected to the second control port, a second electrode of the first transistor is connected to the low level signal, and a gate electrode of the first transistor is connected to an output terminal of the NAND gate, the input terminal of the third NOT gate and the low level turn-on terminal of the first transmission gate; and

a first input terminal of the NAND gate is connected to the second control port, a second input terminal of the NAND gate is connected to the input terminal of the second tri-state NOT gate of the shift register circuit.

In an embodiment, the amplifying circuit includes an even number of NOT gates connected in series, among the even number of NOT gates connected in series, an output terminal of a previous stage NOT gate is connected to an input terminal of a next stage NOT gate adjacent to the previous stage NOT gate, wherein,

an input terminal of the first NOT gate of the even number of NOT gates connected in series is connected to the first electrode of the second transistor of the strobe circuit; and

both an input terminal and an output terminal of the last NOT gate of the even number of NOT gates connected in series are connected to the output circuit.

In an embodiment, the number of NOT gates connected in series in the amplifying circuit is 4.

In an embodiment, the output circuit further includes a second transmission gate and a third transmission gate, wherein,

an input terminal of the second transmission gate is connected to the touch control signal port, an output terminal of the second transmission gate is connected to the output port, a high level turn-on terminal of the second transmission gate is connected to an output terminal of the last NOT gate of the amplifying circuit, and a low level turn-on terminal of the second transmission gate is connected to an input terminal of the last NOT gate of the amplifying circuit; and

an input terminal of the third transmission gate is connected to the stable level port, an output terminal of the third transmission gate is connected to the output port, a high level turn-on terminal of the third transmission gate is connected to the input terminal of the last NOT gate of the amplifying circuit, and a low level turn-on terminal of the third transmission gate is connected to the output terminal of the last NOT gate of the amplifying circuit.

In an embodiment, the stable level port is a common voltage port.

In an embodiment, the two gate control voltage terminals of the first transmission gate include a high level turn-on terminal and a low level turn-on terminal;

the output terminal of the third NOT gate is further connected to the low level turn-on terminal of the first transmission gate, and the second transistor is an N-type transistor;

the first subcircuit comprises an eighth NOT gate, a fourth transmission gate, and a first transistor;

the eighth NOT gate comprises an input terminal connected to the output terminal of the second tri-state NOT gate of the shift register circuit, an output terminal connected to a gate electrode of the first transistor;

the fourth transmission gate comprises an input terminal connected to the second control port, an output terminal connected to a first electrode of the first transistor, the input terminal of the third NOT gate and the high level turn-on terminal of the first transmission gate, a low level turn-on terminal connected to the output terminal of the eighth NOT gate, and a high level turn-on terminal connected to the input terminal of the eighth NOT gate; and

the first transistor is an N-type transistor and comprises a second electrode connected to the low level signal.

In an embodiment, the amplifying circuit includes an even number of NOT gates connected in series, among the even number of NOT gates connected in series, an output terminal of a previous stage NOT gate is connected to an input terminal of a next stage NOT gate adjacent to the previous stage NOT gate, wherein

an input terminal of the first NOT gate of the even number of NOT gates connected in series is connected to the first electrode of the third transistor of the strobe circuit; and

both an input terminal and an output terminal of the last NOT gate of the even number of NOT gates connected in series are connected to the output circuit.

In an embodiment, the number of NOT gates connected in series in the amplifying circuit is 4.

In an embodiment, the output circuit further includes a second transmission gate and a third transmission gate, wherein,

an input terminal of the second transmission gate is connected to the touch control signal port, an output terminal of the second transmission gate is connected to the output port, a high level turn-on terminal of the second transmission gate is connected to an output terminal of the last NOT gate of the amplifying circuit, and a low level turn-on terminal of the second transmission gate is connected to an input terminal of the last NOT gate of the amplifying circuit; and

an input terminal of the third transmission gate is connected to the stable level port, an output terminal of the third transmission gate is connected to the output port, a high level turn-on terminal of the third transmission gate is connected to the input terminal of the last NOT gate of the amplifying circuit, and a low level turn-on terminal of the third transmission gate is connected to the output terminal of the last NOT gate of the amplifying circuit.

In an embodiment, the second subcircuit further comprises a third transistor; and

the third transistor is an N-type transistor, and comprises a gate electrode connected to a touch function enabling port, a first electrode connected to the first electrode of the second transistor, and a second electrode connected to the second electrode of the second transistor.

In an embodiment, the shift register circuit further includes a fourth transistor which is an N-type transistor; and

a first electrode of the fourth transistor is connected to the first control port, a second electrode of the fourth transistor is connected to the low level signal, and a gate electrode of the fourth transistor is connected to the output terminal of the first NOT gate.

A second aspect of the present disclosure provides a driving method of a touch control driving unit, wherein the touch control driving unit is the touch control driving unit according to any one of the foregoing embodiments, and the driving method includes:

a triggering stage of outputting a triggering signal through the triggering signal output port, and outputting a stable level to the output port;

a touch control stage of outputting a triggering signal through the triggering signal output port, and outputting a touch control signal to the output port;

a recovery stage of outputting a triggering signal through the triggering signal output port, and outputting a stable level to the output port; and

a cycle stage of outputting a low level through the triggering signal output port, and outputting a stable level to the output port continuously.

The second aspect of the present disclosure provides another driving method of a touch control driving unit, wherein the touch control driving unit is the touch control driving unit according to any one of the foregoing embodiments, and the driving method includes:

a triggering stage of inputting a high level to the input port, inputting a high level to the first control port; inputting a low level to the second control port, and inputting a low level to the strobe signal port;

a touch control stage of inputting a low level to the first control port, inputting a high level to the second control port, and inputting a high level to the strobe signal port;

a recovery stage of inputting a low level to the first control port, inputting a high level to the second control port, and inputting a low level to the strobe signal port; and

a cycle stage of performing a first sub-cycle stage and a second sub-cycle stage alternately, wherein, in the first sub-cycle stage; a low level is inputted to the input port, a high level is inputted to the first control port, and a low level is inputted to the second control port, and in the second sub-cycle stage; a low level is inputted to the first control port; and a high level is inputted to the second control port.

The second aspect of the present disclosure provides another driving method of a touch control driving unit, wherein the touch control driving unit is the touch control driving unit according to any one of the foregoing embodiment, and the driving method includes:

a triggering stage of inputting a high level to the input port, inputting a high level to the first control port, inputting a low level to the second control port, and inputting a low level or a high level to the strobe signal port;

a touch control stage of inputting a low level or a high level to the input port, inputting a low level to the first control port, inputting a high level to the second control port, and inputting a high level to the strobe signal port;

a recovery stage of inputting a low level to the input port, inputting a high level to the first control port, inputting a low level to the second control port, and inputting a low level to the strobe signal port; and

a cycle stage of performing a first sub-cycle stage and a second sub-cycle stage alternately, wherein, in the first sub-cycle stage, a low level is inputted to the input port, a low level is inputted to the first control port, a high level is inputted to the second control port, and a low level is inputted to the strobe signal port, and in the second sub-cycle stage, a low level is inputted to the input port, a high level is inputted to the first control port, a low level is inputted to the second control port, and a low level is inputted to the strobe signal port.

A third aspect of the present disclosure provides a touch control driving circuit, including a plurality of touch control driving units which are cascaded, each of the plurality of touch control driving units is the touch control driving unit according to any one of the foregoing embodiments, wherein

an output port of each stage of touch control driving unit is connected to one scanning electrode, and a triggering signal output port of the stage of touch control driving unit is connected to an input port of a next stage of touch control driving unit which is adjacent to the stage of touch control driving unit.

The third aspect of the present disclosure provides another touch control driving circuit, including a plurality of touch control driving units which are cascaded, each of the plurality of touch control driving units is the touch control driving unit according to any one of the foregoing embodiment, wherein

of any two adjacent touch control driving units, a first control port of one touch control driving unit is configured to receive a first clock signal, a second control port of the one touch control driving unit is configured to receive a second clock signal, a first control port of the other touch control driving unit is configured to receive the second clock signal, and a second control port of the other touch control driving unit is configured to receive the first clock signal.

In an embodiment, level states of the first and second clock signals are opposite to each other.

The third aspect of the present disclosure provides another touch control driving circuit, including a plurality of touch control driving units which are cascaded, each of the plurality of touch control driving units is the touch control driving unit according to any one of the foregoing embodiment, wherein

of any two adjacent touch control driving units, a first control port of one touch control driving unit is configured to receive a first clock signal, a second control port of the one touch control driving unit is configured to receive a second clock signal, a first control port of the other touch control driving unit is configured to receive the second clock signal, and a second control port of the other touch control driving unit is configured to receive the first clock signal.

In an embodiment, level states of the first and second clock signals are opposite to each other.

The so-called “NOT gate,” “NAND gate,” “transmission gate” and “tri-state NOT gate” in the present disclosure are all logic circuits.

Specifically, a NOT gate can perform a “NOT” operation on an input, that is, the output thereof will be a low level if the input is a high level, while the output thereof will be a high level if the input is a low level. Generally, a NOT gate needs to be connected to a high level signal and a low level signal to operate normally.

A NAND gate performs an “AND” operation on two inputs first, and then performs a “NOT” operation on a result of the “AND” operation. Thus, the NAND gate outputs a low level only if the two inputs are all high levels, otherwise, the NAND gate will always output a high level. Generally, a NAND gate needs to be connected to a high level signal and a low level signal to operate normally.

A transmission gate functions like a switch, and can be turned on or off depending on signals at its control terminals. A transmission gate has two control terminals which are a high level turn-on terminal and a low level turn-on terminal. A transmission gate will be turned on only if its low level turn-on terminal is at a low level and its high level turn-on terminal is at a high level, otherwise, the transmission gate will be turned off.

A tri-state NOT gate has a turned-off state and a turned-on state. When being in the turned-on state, a tri-state NOT gate will perform a “NOT” operation on a signal at its input terminal, and correspond to a combination of a transmission gate with a NOT gate. A tri-state NOT gate has two control terminals which are a high level turn-on terminal and a low level turn-on terminal. A tri-state NOT gate will be turned on only if its low level turn-on terminal is at a low level and its high level turn-on terminal is at a high level, otherwise, the tri-state NOT gate will be turned off. Generally, a tri-state NOT gate needs to be connected to a high level signal and a low level signal to operate normally.

The structures of the above logic circuits are various and known, and thus detailed description thereof will be omitted herein.

BRIEF DESCRIPTION OF THE DRAWINGS

FIG. 1A is a block diagram illustrating a touch control driving unit according to an embodiment of the present disclosure.

FIG. 1B is a circuit diagram illustrating a touch control driving unit according to an embodiment of the present disclosure.

FIG. 1C is a circuit diagram illustrating a touch control driving unit according to an embodiment of the present disclosure.

FIG. 1D is a circuit diagram illustrating a touch control driving unit according to an embodiment of the present disclosure.

FIG. 1E is a circuit diagram illustrating a touch control driving unit according to an embodiment of the present disclosure.

FIG. 2A is a timing diagram illustrating signals at ports of a touch control driving circuit according to an embodiment of the present disclosure.

FIG. 2B is a timing diagram illustrating signals at ports of a touch control driving circuit according to an embodiment of the present disclosure.

FIG. 3 is a block diagram illustrating a structure of a touch control driving circuit according to an embodiment of the present disclosure.

DETAILED DESCRIPTION

In order to make those skilled in the art understand the technical solutions of the present disclosure better, the present disclosure will be further described below in detail with reference to the accompanying drawings and specific embodiments.

The inventors of the present inventive concept have found that, during a touch control process, it is necessary to input a touch control signal to the scanning electrodes alternately, and the scanning electrodes are maintained at a stable level when a touch control signal is not inputted thereto. The stable level may be a common voltage, that is, the scanning electrodes may also sever as common electrodes. If a driving chip is to be used for inputting the touch control signal to each of the scanning electrodes, the driving chip will have a complicated structure. For this purpose, an existing solution is to provide a touch control driving circuit on a substrate, and the touch control driving circuit includes a plurality of cascaded touch control driving units. Each of the touch control driving units is used for supplying a touch control signal to one scanning electrode, and supplying a triggering signal to the next stage touch control driving unit such that the next stage touch control driving unit start to operate. In this way, all of the scanning electrodes can be driven with a few signals.

Thus, an existing touch control driving circuit has disadvantages of complicated structure, large area (which disables a narrow-frame design), unstable output, big noise, and the like.

Therefore, it is desirable to provide a touch control driving unit, a driving method thereof and a touch control driving circuit, and the touch control driving unit and the touch control driving circuit each have a simple structure, a small area, a stable output, and low noise.

As shown in FIGS. 1A to 3, an embodiment of the present disclosure provides a touch control driving unit, which includes a shift register circuit 101, a strobe circuit 102 and an output circuit 104, as illustrated in FIG. 1A.

The shift register circuit 101 includes a first control port K1, an input port IN and a triggering signal output port SOUT. The shift register circuit 101 is connected to the strobe circuit 102, and is configured to generate a triggering signal.

The strobe circuit includes a second control port K2 and a strobe signal port KX. The strobe circuit is connected to the shift register circuit 101, and is configured to control the output circuit 104.

The output circuit 104 includes an output port OUT, a stable level port and a touch control signal port VC. The output circuit 104 is configured to output a stable level or a touch control signal (which is generally a high frequency alternating signal) under control of the strobe circuit.

For example, the stable level port is a common voltage port VCOM (VCOM may also denote the signal output from the common voltage port VCOM). That is, the stable level port is connected to a common voltage, and thus a scanning electrode will be supplied with the common voltage when a touch control signal is not provided. Thus, a scanning electrode also serves as a common electrode. Hereinafter, description will be made by taking the fact that the stable level port is the common voltage port VCOM as an example.

Alternatively, it should be noted that, it is also feasible to supply another stable signal to the stable level port.

For example, the touch control driving unit may further include an amplifying circuit 103, which is provided between the shift register circuit 101 and the output circuit 104, and is configured to amplify a signal generated by the strobe circuit and used for controlling the output circuit 104, as shown in FIG. 1A. In particular, the amplifying circuit 103 may be provided between the strobe circuit and the output circuit 104, as shown in FIGS. 1A to 1E.

That is, the amplifying circuit 103 may be further provided to amplify a control signal outputted from the shift register circuit 101, so that the reliability and stability of the touch control driving unit are increased. Alternatively, it should be noted that, the amplifying circuit 103 may be omitted.

Specific preferred structures of the touch control driving unit will be described below with reference to FIG. 1B.

For example, the shift register circuit 101 may further include a first NOT gate F1, a second NOT gate F2, a first transistor M1, a first tri-state NOT gate SF1 and a second tri-state NOT gate SF2.

The first transistor M1 is an N-type transistor, a first electrode of the first transistor M1 is connected to the first control port K1, a second electrode of the first transistor M1 is connected to a low level signal VSS, and a gate electrode of the first transistor M1 is connected to an output terminal of the first NOT gate F1.

An input terminal of the first NOT gate F1 is connected to the first control port K1.

An input terminal of the first tri-state NOT gate SF1 is connected to the input port IN, a low level turn-on terminal PG of the first tri-state NOT gate SF1 is connected to the output terminal of the first NOT gate F1, a high level turn-on terminal NG of the first tri-state NOT gate SF1 is connected to the first control port K1, and an output terminal of the first tri-state NOT gate SF1 is connected to an input terminal of the second NOT gate F2 and an output terminal of the second tri-state NOT gate SF2.

An input terminal of the second tri-state NOT gate SF2 is connected to the triggering signal output port SOUT, an output terminal of the second NOT gate F2 and the strobe circuit, a low level turn-on terminal PG of the second tri-state NOT gate SF2 is connected to the first control port K1, and a high level turn-on terminal NG of the second tri-state NOT gate SF2 is connected to the output terminal of the first NOT gate F1.

For example, the strobe circuit may further include a NAND gate YF, a second transistor M2, a third transistor M3, a third NOT gate F3 and a first transmission gate C1.

The second transistor M2 is an N-type transistor, a first electrode of the second transistor M2 is connected to the second control port K2, a second electrode of the second transistor M2 is connected to the low level signal VSS, and a gate electrode of the second transistor M2 is connected to an output terminal of the NAND gate YF, an input terminal of the third NOT gate and a low level turn-on terminal PG of the first transmission gate C1.

A first input terminal of the NAND gate YF is connected to the second control port K2, a second input terminal of the NAND gate YF is connected to the input terminal of the second tri-state NOT gate SF2 of the shift register circuit 101.

An output terminal of the third NOT gate F3 is connected to a gate electrode of the third transistor M3 and a high level turn-on terminal NG of the first transmission gate C1.

The third transistor M3 is a P-type transistor, a first electrode of the third transistor M3 is connected to the amplifying circuit 103 and an output terminal of the first transmission gate C1, and a second electrode of the third transistor M3 is connected to the low level signal VSS.

An input terminal of the first transmission gate C1 is connected to the strobe signal port KX, and the first transmission gate C1 includes two gate control voltage terminals connected to the input terminal and the output terminal of the third NOT gate F3, respectively. The two gate control voltage terminals of each transmission gate receive signals, which are complementary two signals, respectively, and the two gate control voltage terminals of each transmission gate may be referred to as a high level turn-on terminal NG and a low level turn-on terminal PG herein.

For example, the amplifying circuit 103 may include an even number of NOT gates connected in series. Among the even number of NOT gates connected in series, an output terminal of a previous stage NOT gate is connected to an input terminal of a next stage NOT gate adjacent to the previous stage NOT gate. For example, the number of NOT gates connected in series in the amplifying circuit 103 is 4. That is, the NOT gates connected in series in the amplifying circuit 103 may be a fourth NOT gate F4, a fifth NOT gate F5, a sixth NOT gate F6 and a seventh NOT gate F7, which is taken as an example to make the following description, but the present disclosure is not limited thereto.

An input terminal of the first NOT gate (e.g., the fourth NOT gate F4) is connected to the first electrode of the third transistor MS of the strobe circuit.

Both an input terminal and an output terminal of the last NOT gate (e.g., the seventh NOT gate F7) are connected to the output circuit 104.

For example, the output circuit 104 may further include a second transmission gate C2 and a third transmission gate C3.

An input terminal of the second transmission gate C2 is connected to the touch control signal port VC, an output terminal of the second transmission gate C2 is connected to the output port OUT, a high level turn-on terminal NG of the second transmission gate C2 is connected to an output terminal of the last NOT gate (e.g., the seventh NOT gate F7) of the amplifying circuit 103, and a low level turn-on terminal PG of the second transmission gate C2 is connected to an input terminal of the last NOT gate of the amplifying circuit 103.

An input terminal of the third transmission gate C3 is connected to the common voltage port VCOM, an output terminal of the third transmission gate C3 is connected to the output port OUT, a high level turn-on terminal NG of the third transmission gate C3 is connected to the input terminal of the last NOT gate (e.g., the seventh NOT gate F7) of the amplifying circuit 103, and a low level turn-on terminal PG of the third transmission gate C3 is connected to the output terminal of the last NOT gate of the amplifying circuit 103.

In FIG. 1B, some logic circuits are further connected to the low level signal VSS and a high level signal VDD, which is a known method to cause the logic circuits to operate, thus detailed description thereof is omitted herein.

Another embodiment of the present disclosure provides a driving method of the touch control driving unit as described above. The driving method includes the following stages.

In a triggering stage, a triggering signal is outputted through the triggering signal output port SOUT, and a common voltage is outputted to the output port OUT.

In a touch control stage, a triggering signal is outputted through the triggering signal output port SOUT, and a touch control signal is outputted to the output port OUT.

In a recovery stage, a triggering signal is outputted through the triggering signal output port SOUT, and a common voltage is outputted to the output port OUT.

In a cycle stage, a low level is outputted through the triggering signal output port SOUT, and a stable level is outputted to the output port OUT continuously.

As shown in FIG. 2A, the driving method and operational principle of the touch control driving unit will be further described below with reference to the specific structure of the touch control driving unit. The driving method specifically includes the following steps S01 to S04.

In the step S01 (i.e., the triggering stage), a high level is inputted to the input port IN, a high level is inputted to the first control port K1, a low level is inputted to the second control port K2, and a low level is inputted to the strobe signal port KX.

In the present stage, the high level inputted to the first control port K1 passes through the first NOT gate F1 and then becomes a low level, causing the first transistor M1 to be turned off. At the same time, the high level turn-on terminal NG of the first tri-state NOT gate SF1 is at the high level, and the low level turn-on terminal PG of the first tri-state NOT gate SF1 is at the low level, causing the first tri-state NOT gate SF1 to be turned on. Correspondingly, since the levels at the terminals of the second tri-state NOT gate SF2 are opposite to those at the corresponding terminals of the first tri-state NOT gate SF1, the second tri-state NOT gate SF2 is turned off definitely. In this case, the first tri-state NOT gate SF1 transforms the high level from the input port IN into a low level, which becomes a triggering signal with high level after passing through the second NOT gate F2, This triggering signal with high level is outputted from the triggering signal output port SOUT, and inputted to the NAND gate YF through the second input terminal of the NAND gate YF.

Further, the low level from the second control port K2 is inputted to the other input terminal (i.e., the first input terminal) of the NAND gate YF, thus, the NAND gate YF outputs a high level, causing the second transistor M2 to be turned on. In this case, the low level signal VSS is transmitted to the first input terminal of the NAND gate YF through the second transistor M2, causing the input at the first input terminal of the NAND gate YF to be a stable low level. At the same time, the high level from the output terminal of the NAND gate YF passes through the third NOT gate F3 and then becomes a low level, which causes the first transmission gate C1 to be turned off and causes the third transistor M3 to be turned on. In this case, the low level signal VSS is transmitted to the output terminal of the first transmission gate C1 through the third transistor M3, and causes a signal at the output terminal of the first transmission gate C1 to be a stable low level.

The low level at the output terminal of the first transmission gate C1 is amplified by each of the NOT gates of the amplifying circuit 103, and then is inputted to the output circuit 104. As for the last NOT gate (e.g., the seventh NOT gate F7), the levels at the input terminal and at the output terminal thereof are opposite to each other definitely, thus, of the second transmission gate C2 and the third transmission gate C3, one must be turned on and the other must be tuned off. Here, the third transmission gate C3 is turned on, thus a common voltage at the common voltage port VCOM is outputted from the output port OUT to a scanning electrode, causing the scanning electrode to display.

Thus, in the present stage, the low level at the first input terminal of the NAND gate YF is stable due to the effect of the second transistor M2, thus an adverse effect due to the fluctuation of a signal at the second control port K2 is avoided, thereby ensuring that the first transmission gate C1 is turned off. Further, a level at the output terminal of the first transmission gate C1 is pulled down to a low level stably due to the effect of the third transistor M3, thus the noise interference of a strobe signal is avoided, thereby enabling the touch control driving unit to output a common voltage stably.

In FIG. 2A, the high level at the input port IN is very short in time, because this illustration is made by taking the first stage of touch control driving unit as shown in FIG. 3 as an example. A triggering signal, which is a signal from the input port IN, of the first stage of touch control driving unit may be specifically provided by a driving chip, and is preferred to be short in time. However, a triggering signal of each next stage of touch control driving unit is an output signal from the triggering signal output port SOUT of an immediately previous stage of touch control driving unit, and the high level thereof is longer in time according to the description below. It should be noted that, the length in time of the high level does not affect the operation of a circuit herein.

In the step S02 (e.g., the touch control stage), a low level is inputted to the first control port K1, a high level is inputted to the second control port K2, and a high level is inputted to the strobe signal port KX.

In the present stage, a signal at the first control port K1 becomes a low level, which passes through the first NOT gate F1 and becomes a high level, causing the first transistor M1 to be turned on. Thus, the low level signal VSS is transmitted to the first control port K1 through the first transistor M1, and causes the low level at the first control port K1 to be more stable, thereby reducing the noise interference. At the same time, the two tri-state NOT gates have states opposite to those in the triggering stage, that is, the first tri-state NOT gate SF1 is turned off while the second tri-state NOT gate SF2 is turned on. Since the first tri-state NOT gate SF1 is turned off, a signal at the input port IN cannot enter the circuit, and will not affect the operation of the circuit, this is the reason why the length in time of the high level of a triggering signal does not affect the operation of a circuit herein. Further, without an input signal, the output terminal of the first tri-state NOT gate SF1 is at a low level, which passes through the second NOT gate F2 and becomes a high level. This high level passes through the second tri-state NOT gate SF2 and becomes the low level, causing the triggering signal output port SOUT to output a stable triggering signal with high level, which is used for triggering a next stage of touch control driving unit. At the same time, this high level is also inputted to the input terminal (e.g., the second input terminal) of the NAND gate YF.

At this time, a signal at the other input terminal (e.g., the first input terminal, which is connected to the second control port K2) of the NAND gate YF is also a high level, thus the output of the NAND gate YF becomes a low level, which passes the third NOT gate F3 and becomes a high level, causing both the second transistor M2 and the third transistor M3 to be turned off. Further, the first transmission gate C1 is turned on, and a strobe signal from the strobe signal port KX is transmitted to the amplifying circuit 103.

At this time, the strobe signal is a high level, thus level states at respective nodes of the amplifying circuit 103 and the output circuit 104 are opposite to those in the triggering stage, respectively. The output circuit 104 transmits a touch control signal at the touch control signal port VC (VC may also denote the signal output from the touch control signal port VC) to the output port OUT, so as to input the touch control signal to a scanning electrode, thereby implementing touch control.

In the step S03 (i.e., the recovery stage), a low level is inputted to the first control port K1, a high level is inputted to the second control port K2, and a low level is inputted to the strobe signal port KX.

In the present stage, the signals at the ports other than the strobe signal port KX remain unchanged, and only the strobe signal changes to a low level. This low level is inputted to the amplifying circuit 103, thus the amplifying circuit 103 and the output circuit 104 have the same states as those in the triggering stage. As a result, the output circuit 104 transmits the common voltage at the common voltage port VCOM to the output port OUT, so that a scanning electrode maintains the common voltage for performing display.

In the step S04 (i.e., the cycle stage), a first sub-cycle stage and a second sub-cycle stage are performed alternately. In the first sub-cycle stage, a low level is inputted to the input port IN, a high level is inputted to the first control port K1, and a low level is inputted to the second control port K2. In the second sub-cycle stage, a low level is inputted to the first control port K1, and a high level is inputted to the second control port K2.

In the first sub-cycle stage, a signal at the first control port K1 becomes a high level again, causing the first tri-state NOT gate SF1 to be turned on. At this time, however, a signal at the input port IN is a low level, which passes through the first tri-state NOT gate SF1 and the second NOT gate F2, and then changes the signal at the triggering signal output port SOUT to a low level. Thus, the triggering signal output port SOUT does not output a triggering signal, but outputs the low level. Further, the other input signal, which is a signal from the second control port K2, of the NAND gate YF is also a low level, thus the output of the NAND gate YF is a high level. As a result, the first transmission gate C1 is turned off, thus a strobe signal will not have any effect on the subsequent circuits no matter what the strobe signal will be. Furthermore, a low level is transmitted to the output terminal of the first transmission gate C1 through the third transistor M3, and is inputted to the amplifying circuit 103. As a result, the output circuit 104 outputs a common voltage stably.

In the second sub-cycle stage, a signal at the first control port K1 becomes a low level again, causing the first tri-state NOT gate SF1 to be turned off and causing the second tri-state NOT gate SF2 to be turned on. At this time, the input terminal of the second tri-state NOT gate SF2 is at a low level, which passes through the loop of the second tri-state NOT gate SF2 and the second NOT gate F2 and causes the triggering signal output port SOUT to keep an output of low level. In addition, the corresponding input terminal (e.g., the second input terminal) of the NAND gate YF is at a low level, thus the output of the NAND gate YF is a high level. In this case, the first transmission gate C1 is still turned off, and thus a strobe signal cannot enter therein. As a result, the output circuit 104 continues to output a common voltage.

Thus, in the present stage, the output of the triggering signal output port SOUT becomes a low level, that is, the triggering signal output port SOUT does not output a triggering signal anymore. At the same time, regardless the changes of the signals at the first control port K1 and the second control port K2, a signal at the output port OUT is always a common voltage, which may be used for continuous display.

Thus, the first and second sub-cycle stages occur alternately depending on the changes of the signals at the first control port K1 and the second control port K2. When a signal at the input port IN becomes a high level again, the touch control driving unit repeats the triggering stage to start a new cycle of operation.

It should be noted that in the embodiment of FIG. 1B, the first transistor M1 is turned on only in the step S02 to cause the low level at the first control port K1 to be more stable. That is, in an embodiment, the first transistor M1 may be replaced by a capacitor. Alternatively, in another embodiment, the first transistor M1 may be omitted from the touch control driving unit shown in FIG. 1B to obtain another touch control driving unit as shown in FIG. 1C. A timing diagram for signals at the ports of the touch control driving circuit shown in FIG. 1C may be the same as that shown in FIG. 2A, and a driving method of the touch control driving circuit shown in FIG. 1C may be the same as that of the touch control driving unit shown in FIG. 1B.

In an embodiment, as shown in FIGS. 1B and 1C, the strobe circuit 102 may further include a first subcircuit 1021 and a second subcircuit 1022 connected to each other. The second subcircuit 1022 may include the fourth transistor M3A, the third. NOT gate F3 and the first transmission gate C1. The input terminal of the third. NOT gate F3 is connected to the first subcircuit 1021, the output terminal of the third. NOT gate F3 is connected to the gate electrode of the fourth transistor M3A. The first electrode of the fourth transistor M3A is connected to the amplifying circuit 103 and the output terminal of the first transmission gate C1, and the second electrode of the fourth transistor M3A is connected to the low level signal VSS. The input terminal of the first transmission gate C1 is connected to the strobe signal port KX.

In an embodiment, the output terminal of the third NOT gate F3 is further connected to the high level turn-on terminal NG of the first transmission gate C1, and the fourth transistor M3A is a P-type transistor. The first subcircuit 1021 may include the NAND gate YF and the second transistor M2. The second transistor M2 is an N-type transistor, the first electrode of the second transistor M2 is connected to the second control port K2, the second electrode of the second transistor M2 is connected to the low level signal VSS, and the gate electrode of the second transistor M2 is connected to the output terminal of the NAND gate YF, the input terminal of the third NOT gate F3 and the low level turn-on terminal PG of the first transmission gate C1. The first input terminal of the NAND gate YF is connected to the second control port K2, the second input terminal of the NAND gate YF is connected to the input terminal of the second tri-state NOT gate SF2 of the shift register circuit 101.

A structure of the strobe circuit 102 is described above and is shown in FIGS. 1B and 1C, however the present disclosure is not limited thereto. For example, another structure of the strobe circuit 102 is shown in FIGS. 1D and 1E and will be described below.

As shown in FIGS. 1D and 1E, alternatively, the strobe circuit 102 may further include an eighth NOT gate F8, a fourth transmission gate C4, the second transistor M2, a fourth transistor WA, the third NOT gate F3, and the first transmission gate C1.

For example, the eighth NOT gate F8 includes an input terminal connected to the output terminal of the second tri-state NOT gate SF2 of the shift register circuit 101, an output terminal connected to the gate electrode of the second transistor M2.

For example, the fourth transmission gate C4 includes an input terminal connected to the second control port K2, an output terminal connected to the first electrode of the second transistor M2, a low level turn-on-terminal. PG connected to the output terminal of the eighth NOT gate F8, and a high level turn-on terminal NG connected to the input terminal of the eighth NOT gate F8.

For example, the second transistor M2 is an N-type transistor and includes the second electrode connected to the low level signal VSS.

For example, the third NOT gate F3 includes the input terminal connected to the output terminal of the fourth transmission gate C4 and the first electrode of the second transistor M2, and the output terminal connected to the low level turn-on terminal. PG of the first transmission gate C1 and a gate electrode of the fourth transistor MSA.

For example, the first transmission gate C1 includes the input terminal connected to the strobe signal port KX, the high level turn-on terminal NG connected to the input terminal of the third NOT gate F3, and the output terminal connected to a first electrode of the fourth transistor M3A.

Further, the fourth transistor M3A is an N-type transistor and includes a second electrode connected to the low level signal VSS.

Further, among the even number of NOT gates F4 to F7 connected in series of the amplifying circuit 103, the output terminal of a previous stage NOT gate (e.g., F4) is connected to the input terminal of a next stage NOT gate (e.g., F5) adjacent to the previous stage NOT gate (e.g., F4). The input terminal of the first NOT gate (e.g., F4) of the even number of NOT gates connected in series is connected to both the first electrode of the fourth transistor M3A and the output terminal of the first transmission gate C1 of the strobe circuit 102. Other structures of the touch control driving unit shown in FIG. 1D may be the same as those of the touch control driving unit shown in each of FIGS. 1B and 1C, and detailed description thereof is omitted here.

As described above, the first subcircuit 1021 shown in FIG. 1D may be different from that shown in FIG. 1B or 1C, and the positions of terminals PG and NG of the first transmission gate C1 of the second subcircuit 1022 shown in FIG. 1D may be different from those shown in FIG. 1B or 1C.

Specifically, in FIG. 1D, the output terminal of the third NOT gate F3 of the second subcircuit 1022 is further connected to the low level turn-on terminal of the first transmission gate C1, and the fourth transistor M3A is an N-type transistor. The first subcircuit 1021 may include an eighth NOT gate F8, a fourth transmission gate C4, and the second transistor M2. The eighth NOT gate F8 includes an input terminal connected to the output terminal of the second tri-state NOT gate SF2 of the shift register circuit 101, an output terminal connected to the gate electrode of the second transistor M2. The fourth transmission gate C1 includes an input terminal connected to the second control port K2, an output terminal connected to the first electrode of the second transistor M2, the input terminal of the third NOT gate F3 and the high level turn-on terminal NG of the first transmission gate C1, a low level turn-on terminal PG connected to the output terminal of the eighth NOT gate F8, and a high level turn-on terminal NG connected to the input terminal of the eighth NOT gate F8. The second transistor M2 is an N-type transistor and includes a second electrode connected to the low level signal VSS.

In an embodiment, the strobe circuit 102 of the touch control driving unit shown in FIG. 1D may further include a fifth transistor M3B, as shown in FIG. 1E. The fifth transistor M3B is an N-type transistor, and includes a gate electrode connected to a touch function enabling port VCOM_EN, a first electrode connected to the first electrode of the fourth electrode M3A, and a second electrode connected to the second electrode of the fourth transistor M3A.

In the touch control driving unit shown in FIG. 1E, in a case where the touch function enabling port VCOM_EN provides a valid level (e.g., a turned-on level) for the fifth transistor M3B, the output port OUT will output a common voltage VCOM provided by the common voltage port VCOM. That is, when the touch function enabling port VCOM_EN provides the valid level, the touch control driving unit shown in FIG. 1E only has a display function but does not have a touch function. Therefore, a duration of a touch control stage of the touch control driving unit shown in FIG. 1E may be control by adjusting a duration of the valid level provided by the touch function enabling port VCOM_EN.

In an embodiment, the shift register circuit 101 shown in FIG. 1C, 1D or 1E may further include the first transistor M1 as shown in FIG. 1B.

Hereinafter, a timing diagram and a driving method of the touch control driving unit as shown in FIG. 1D or 1F will be described. For example, a digit of “0” may be employed to denote a low level, and a digit of “1” may be employed to denote a high level. In this case, the levels at nodes Pa, Pb, Pm and Pn and the ports IN, K1, K2, KX, OUT, and SOUT, as shown in FIG. 1E, for driving the touch control driving unit as shown in FIG. 1D or IF may be those in the following Table 1.

TABLE 1 IN K1 Pn SOUT K2 Pb KX OUT Triggering 1 1 0 1 0 0 0 or 1 VCOM stage Touch 0 or 1 0 0 1 1 1 1 VC control stage Recovery 0 1 1 0 0 0 0 VCOM stage First 0 0 1 0 1 0 0 VCOM sub-cycle stage Second 0 1 1 0 0 0 0 VCOM sub-cycle stage

Further, a timing diagram of signals at the ports of the touch control driving circuit as shown in each of FIGS. 1D and 1E is shown in FIG. 2B.

In an embodiment, a driving method of the touch control driving circuit as shown in each of FIGS. 1D and 1E may include: a triggering stage of outputting a triggering signal through the triggering signal output port SOUT, and outputting a stable level to the output port OUT; a touch control stage of outputting a triggering signal through the triggering signal output port sour, and outputting a touch control signal to the output port OUT; a recovery stage of outputting a triggering signal through the triggering signal output port SOUT, and outputting a stable level to the output port OUT; and a cycle stage of outputting a low level through the triggering signal output port SOUT, and outputting a stable level to the output port OUT continuously.

In an embodiment, a driving method of the touch control driving unit as shown in each of FIGS. 1D and 1E may include: a triggering stage of inputting a high level to the input port IN, inputting a high level to the first control port K1, inputting a low level to the second control port K2, and inputting a low level or a high level to the strobe signal port KX; a touch control stage of inputting a low level or a high level to the input port IN, inputting a low level to the first control port K1, inputting a high level to the second control port K2, and inputting a high level to the strobe signal port KX; a recovery stage of inputting a low level to the input port IN, inputting a high level to the first control port K1, inputting a low level to the second control port K2, and inputting a low level to the strobe signal port KX; and a cycle stage of performing a first sub-cycle stage and a second sub-cycle stage alternately, for example, in the first sub-cycle stage; a low level is inputted to the input port IN, a low level is inputted to the first control port K1, a high level is inputted to the second control port K2, and a low level is inputted to the strobe signal port KX, and in the second sub-cycle stage, a low level is inputted to the input port IN, a high level is inputted to the first control port K1, a low level is inputted to the second control port K2, and a low level is inputted to the strobe signal port KX.

As shown in FIG. 3, still another embodiment of the present disclosure provides a touch control driving circuit including a plurality of the above-described touch control driving units which are cascaded, in which an output port OUT of each stage of touch control driving unit is connected to one scanning electrode, and a triggering signal output port SOUT of a previous stage of touch control driving unit is connected to an input port IN of a next stage of touch control driving unit which is adjacent to said previous stage of touch control driving unit.

Alternatively, among the plurality of the touch control driving units which are cascaded, the input port IN of the first stage of touch control driving unit may be connected to a special initial triggering signal, or may be connected to the triggering signal output port SOUT of the last stage of touch control driving unit, and the present disclosure is not limited specifically.

Among the plurality of the touch control driving units, for example, of any two adjacent touch control driving units, a first control port K1 of one touch control driving unit may be configured to receive a first clock signal, a second control port K2 of the one touch control driving unit may be configured to receive a second dock signal, a first control port K2 of the other touch control driving unit may be configured to receive the second clock signal, and a second control port K2 of the other touch control driving unit may be configured to receive the first clock signal.

It is apparent from the above connection configuration that, a triggering signal generated by each stage of touch control driving unit is used for triggering an immediately next stage of touch control driving unit. As shown in FIG. 2A or 2B, the operation stage of an immediately next stage of touch control driving unit is later than that of the current stage of touch control driving unit by half cycle of a clock signal. Thus, the circuit can be controlled with fewer control signals by providing two clock signals with opposite level states, and connecting control ports of two adjacent stages of touch control driving unit to opposite clock signals, respectively. In this way, the number of the wires of the circuit is reduced.

The touch control driving unit according to the present disclosure has a reasonable structure, and thus has a small number of components, a simple structure, and a small area, which facilitates a narrow-frame design. In addition, the touch control driving unit can effectively eliminate adverse effects of control signals, reduce noise, and cause the output thereof to be stable.

The foregoing embodiments may be combined in the absence of obvious conflict.

It should be noted that, although the terms “first”, “second”, “third”, and the like may be used herein to describe various elements, these elements should not be limited by these terms. These terms are only used to distinguish one element from another element. Thus, a second element described in one embodiment could be termed a first element, without departing from the teachings of the inventive concept.

It should be understood that the aforementioned embodiments are merely exemplary embodiments used for describing the principle of the present disclosure, but the present disclosure is not limited thereto. For a person of ordinary skill in the art, various variations and improvements may be made without departing from the spirit and essence of the present disclosure, and those variations and improvements also fall within the protection scope of the present disclosure. 

The invention claimed is:
 1. A touch control driving unit, comprising a shift register circuit, a strobe circuit and an output circuit, wherein the shift register circuit comprises a first control port, an input port and a triggering signal output port, the shift register circuit is connected to the strobe circuit and is configured to generate a triggering signal; the strobe circuit comprises a second control port and a strobe signal port, the strobe circuit is connected to the shift register circuit and is configured to control the output circuit; the output circuit comprises an output port, a stable level port and a touch control signal port, the output circuit is configured to output a stable level or a touch control signal under control of the strobe circuit; the shift register circuit further comprises a first NOT gate, a second NOT gate, a first tri-state NOT gate and a second tri-state NOT gate; an input terminal of the first NOT gate is connected to the first control port; an input terminal of the first tri-state NOT gate is connected to the input port, a low level turn-on terminal of the first tri-state NOT gate is connected to an output terminal of the first NOT gate, a high level turn-on terminal of the first tri-state NOT gate is connected to the first control port, and an output terminal of the first tri-state NOT gate is connected to an input terminal of the second NOT gate and an output terminal of the second tri-state NOT gate; and an input terminal of the second tri-state NOT gate is connected to the triggering signal output port, an output terminal of the second NOT gate and the strobe circuit, a low level turn-on terminal of the second tri-state NOT gate is connected to the first control port, and a high level turn-on terminal of the second tri-state NOT gate is connected to the output terminal of the first NOT gate.
 2. The touch control driving unit according to claim 1, further comprising: an amplifying circuit provided between the strobe circuit and the output circuit, and configured to amplify a signal which is generated by the strobe circuit and is used for controlling the output circuit.
 3. The touch control driving unit according to claim 2, wherein the strobe circuit further comprises a first subcircuit and a second subcircuit, the first subcircuit is connected to the shift register module and the second subcircuit, wherein the second subcircuit comprises a second transistor, a third NOT gate and a first transmission gate; an input terminal of the third NOT gate is connected to the first subcircuit, an output terminal of the third NOT gate is connected to a gate electrode of the second transistor; a first electrode of the second transistor is connected to the amplifying circuit and an output terminal of the first transmission gate, and a second electrode of the second transistor is connected to a low level signal; and an input terminal of the first transmission gate is connected to the strobe signal port, and the first transmission gate comprises two gate control voltage terminals connected to the input terminal of the third NOT gate and the output terminal of the third NOT gate, respectively.
 4. The touch control driving unit according to claim 3, wherein the two gate control voltage terminals of the first transmission gate comprise a high level turn-on terminal and a low level turn-on terminal; the output terminal of the third NOT gate is further connected to the high level turn-on terminal of the first transmission gate, and the second transistor is a P-type transistor; the first subcircuit comprises a NAND gate and a first transistor; the first transistor is an N-type transistor, a first electrode of the first transistor is connected to the second control port, a second electrode of the first transistor is connected to the low level signal, and a gate electrode of the first transistor is connected to an output terminal of the NAND gate, the input terminal of the third NOT gate and the low level turn-on terminal of the first transmission gate; and a first input terminal of the NAND gate is connected to the second control port, a second input terminal of the NAND gate is connected to the input terminal of the second tri-state NOT gate of the shift register circuit.
 5. The touch control driving unit according to claim 4, wherein the amplifying circuit comprises an even number of NOT gates connected in series, among the even number of NOT gates connected in series, an output terminal of a previous stage NOT gate is connected to an input terminal of a next stage NOT gate adjacent to the previous stage NOT gate, wherein an input terminal of the first NOT gate of the even number of NOT gates connected in series is connected to the first electrode of the second transistor of the strobe circuit; and both an input terminal and an output terminal of the last NOT gate of the even number of NOT gates connected in series are connected to the output circuit.
 6. The touch control driving unit according to claim 5, wherein the output circuit further comprises a second transmission gate and a third transmission gate, wherein, an input terminal of the second transmission gate is connected to the touch control signal port, an output terminal of the second transmission gate is connected to the output port, a high level turn-on terminal of the second transmission gate is connected to an output terminal of the last NOT gate of the amplifying circuit, and a low level turn-on terminal of the second transmission gate is connected to an input terminal of the last NOT gate of the amplifying circuit; and an input terminal of the third transmission gate is connected to the stable level port, an output terminal of the third transmission gate is connected to the output port, a high level turn-on terminal of the third transmission gate is connected to the input terminal of the last NOT gate of the amplifying circuit, and a low level turn-on terminal of the third transmission gate is connected to the output terminal of the last NOT gate of the amplifying circuit.
 7. The touch control driving unit according to claim 1, wherein the stable level port is a common voltage port.
 8. The touch control driving unit according to claim 3, wherein the two gate control voltage terminals of the first transmission gate comprise a high level turn-on terminal and a low level turn-on terminal; the output terminal of the third NOT gate is further connected to the low level turn-on terminal of the first transmission gate; and the second transistor is an N-type transistor; the first subcircuit comprises an eighth NOT gate, a fourth transmission gate, and a first transistor; the eighth NOT gate comprises an input terminal connected to the output terminal of the second tri-state NOT gate of the shift register circuit; an output terminal connected to a gate electrode of the first transistor; the fourth transmission gate comprises an input terminal connected to the second control port, an output terminal connected to a first electrode of the first transistor, the input terminal of the third NOT gate and the high level turn-on terminal of the first transmission gate, a low level turn-on terminal connected to the output terminal of the eighth NOT gate, and a high level turn-on terminal connected to the input terminal of the eighth NOT gate; and the first transistor is an N-type transistor and comprises a second electrode connected to the low level signal.
 9. The touch control driving unit according to claim 8, wherein the amplifying circuit comprises an even number of NOT gates connected in series, among the even number of NOT gates connected in series, an output terminal of a previous stage NOT gate is connected to an input terminal of a next stage NOT gate adjacent to the previous stage NOT gate, wherein an input terminal of the first NOT gate of the even number of NOT gates connected in series is connected to the first electrode of the third transistor of the strobe circuit; and both an input terminal and an output terminal of the last NOT gate of the even number of NOT gates connected in series are connected to the output circuit.
 10. The touch control driving unit according to claim 9, wherein the output circuit further comprises a second transmission gate and a third transmission gate, wherein, an input terminal of the second transmission gate is connected to the touch control signal port, an output terminal of the second transmission gate is connected to the output port, a high level turn-on terminal of the second transmission gate is connected to an output terminal of the last NOT gate of the amplifying circuit, and a low level turn-on terminal of the second transmission gate is connected to an input terminal of the last NOT gate of the amplifying circuit; and an input terminal of the third transmission gate is connected to the stable level port, an output terminal of the third transmission gate is connected to the output port, a high level turn-on terminal of the third transmission gate is connected to the input terminal of the last NOT gate of the amplifying circuit, and a low level turn-on terminal of the third transmission gate is connected to the output terminal of the last NOT gate of the amplifying circuit.
 11. The touch control driving unit according to claim 8, wherein the second subcircuit further comprises a third transistor; and the third transistor is an N-type transistor, and comprises a gate electrode connected to a touch function enabling port, a first electrode connected to the first electrode of the second transistor, and a second electrode connected to the second electrode of the second transistor.
 12. The touch control driving unit according to claim 8, wherein the shift register circuit further comprises a fourth transistor which is an N-type transistor; and a first electrode of the fourth transistor is connected to the first control port, a second electrode of the fourth transistor is connected to the low level signal, and a gate electrode of the fourth transistor is connected to the output terminal of the first NOT gate.
 13. A driving method of a touch control driving unit, wherein the touch control driving unit is the touch control driving unit according to claim 1, and the driving method comprises: a triggering stage of outputting a triggering signal through the triggering signal output port, and outputting a stable level to the output port; a touch control stage of outputting a triggering signal through the triggering signal output port, and outputting a touch control signal to the output port; a recovery stage of outputting a triggering signal through the triggering signal output port, and outputting a stable level to the output port; and a cycle stage of outputting a low level through the triggering signal output port, and outputting a stable level to the output port continuously.
 14. A driving method of a touch control driving unit, wherein the touch control driving unit is the touch control driving unit according to claim 6, and the driving method comprises: a triggering stage of inputting a high level to the input port, inputting a high level to the first control port, inputting a low level to the second control port, and inputting a low level to the strobe signal port; a touch control stage of inputting a low level to the first control port, inputting a high level to the second control port, and inputting a high level to the strobe signal port; a recovery stage of inputting a low level to the first control port, inputting a high level to the second control port, and inputting a low level to the strobe signal port; and a cycle stage of performing a first sub-cycle stage and a second sub-cycle stage alternately, wherein, in the first sub-cycle stage, a low level is inputted to the input port, a high level is inputted to the first control port, and a low level is inputted to the second control port, and in the second sub-cycle stage, a low level is inputted to the first control port, and a high level is inputted to the second control port.
 15. A driving method of a touch control driving unit, wherein the touch control driving unit is the touch control driving unit according to claim 10, and the driving method comprises: a triggering stage of inputting a high level to the input port, inputting a high level to the first control port, inputting a low level to the second control port, and inputting a low level or a high level to the strobe signal port; a touch control stage of inputting a low level or a high level to the input port, inputting a low level to the first control port, inputting a high level to the second control port, and inputting a high level to the strobe signal port; a recovery stage of inputting a low level to the input port, inputting a high level to the first control port, inputting a low level to the second control port, and inputting a low level to the strobe signal port; and a cycle stage of performing a first sub-cycle stage and a second sub-cycle stage alternately, wherein, in the first sub-cycle stage, a low level is inputted to the input port, a low level is inputted to the first control port, a high level is inputted to the second control port, and a low level is inputted to the strobe signal port, and in the second sub-cycle stage, a low level is inputted to the input port, a high level is inputted to the first control port, a low level is inputted to the second control port, and a low level is inputted to the strobe signal port.
 16. A touch control driving circuit, comprising a plurality of touch control driving units which are cascaded, each of the plurality of touch control driving units is the touch control driving unit according to claim 1, wherein an output port of each stage of touch control driving unit is connected to one scanning electrode, and a triggering signal output port of the stage of touch control driving unit is connected to an input port of a next stage of touch control driving unit which is adjacent to the stage of touch control driving unit.
 17. A touch control driving circuit, comprising a plurality of touch control driving units which are cascaded, each of the plurality of touch control driving units is the touch control driving unit according to claim 6, wherein of any two adjacent touch control driving units, a first control port of one touch control driving unit is configured to receive a first clock signal, a second control port of the one touch control driving unit is configured to receive a second clock signal, a first control port of the other touch control driving unit is configured to receive the second clock signal, and a second control port of the other touch control driving unit is configured to receive the first clock signal.
 18. The touch control driving circuit according to claim 17, wherein level states of the first and second clock signals are opposite to each other.
 19. A touch control driving circuit, comprising a plurality of touch control driving units which are cascaded, each of the plurality of touch control driving units is the touch control driving unit according to claim 10, wherein of any two adjacent touch control driving units, a first control port of one touch control driving unit is configured to receive a first clock signal, a second control port of the one touch control driving unit is configured to receive a second clock signal, a first control port of the other touch control driving unit is configured to receive the second clock signal, and a second control port of the other touch control driving unit is configured to receive the first clock signal.
 20. The touch control driving circuit according to claim 19, wherein level states of the first and second clock signals are opposite to each other. 